A Simple Framework for Agent-Based Modeling with Extracellular Matrix.

IF 2 4区 数学 Q2 BIOLOGY
John Metzcar, Ben S Duggan, Brandon Fischer, Matthew Murphy, Randy Heiland, Paul Macklin
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Abstract

Extracellular matrix (ECM) is a key component of the cellular microenvironment and critical in multiple disease and developmental processes. Representing ECM and cell-ECM interactions is a challenging multiscale problem as they span molecular-level details to tissue-level dynamics. While several computational frameworks exist for ECM modeling, they often focus on very detailed modeling of individual ECM fibers or represent only a single aspect of the ECM. Using the PhysiCell agent-based modeling platform, we developed a framework of intermediate detail with the ability to capture bidirectional cell-ECM interactions. We represent a small region of ECM, an ECM element, with three variables describing its local microstructure: anisotropy, density, and overall fiber orientation. To spatially model the ECM, we use an array of ECM elements. Cells remodel local ECM microstructure and in turn, local microstructure impacts cellular motility. We demonstrate the utility of this framework and reusability of its core cell-ECM interaction model through examples in cellular invasion, wound healing, basement membrane degradation, and leader-follower collective migration. Despite the relative simplicity of the framework, it is able to capture a broad range of cell-ECM interactions of interest to the modeling community. Furthermore, variables representing the ECM microstructure are accessible through simple programming interfaces. This allows them to impact cell behaviors, such as proliferation and death, without requiring custom code for each interaction, particularly through PhysiCell's modeling grammar, enabling rapid modeling of a diverse range of cell-matrix biology. We make this framework available as a free and open source software package at https://github.com/PhysiCell-Models/collective-invasion .

基于细胞外基质的代理建模的简单框架
细胞外基质(ECM)是细胞微环境的重要组成部分,在多种疾病和发育过程中起着关键作用。表示ECM和细胞-ECM相互作用是一个具有挑战性的多尺度问题,因为它们跨越分子水平的细节到组织水平的动力学。虽然存在一些用于ECM建模的计算框架,但它们通常侧重于非常详细的单个ECM纤维建模,或者只代表ECM的一个方面。使用基于PhysiCell代理的建模平台,我们开发了一个中间细节框架,能够捕获双向细胞- ecm相互作用。我们表示了ECM的一个小区域,一个ECM元件,用三个变量描述其局部微观结构:各向异性、密度和总体纤维取向。为了对ECM进行空间建模,我们使用一个ECM元素数组。细胞重塑局部ECM微观结构,而局部微观结构又影响细胞运动。我们通过细胞入侵、伤口愈合、基底膜降解和领导者-追随者集体迁移等例子,展示了该框架的实用性及其核心细胞- ecm相互作用模型的可重用性。尽管框架相对简单,但它能够捕获建模社区感兴趣的广泛的细胞- ecm相互作用。此外,表示ECM微观结构的变量可以通过简单的编程接口访问。这使它们能够影响细胞行为,如增殖和死亡,而不需要为每次相互作用定制代码,特别是通过PhysiCell的建模语法,能够快速建模各种细胞基质生物学。我们将这个框架作为免费的开源软件包发布在https://github.com/PhysiCell-Models/collective-invasion上。
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来源期刊
CiteScore
3.90
自引率
8.60%
发文量
123
审稿时长
7.5 months
期刊介绍: The Bulletin of Mathematical Biology, the official journal of the Society for Mathematical Biology, disseminates original research findings and other information relevant to the interface of biology and the mathematical sciences. Contributions should have relevance to both fields. In order to accommodate the broad scope of new developments, the journal accepts a variety of contributions, including: Original research articles focused on new biological insights gained with the help of tools from the mathematical sciences or new mathematical tools and methods with demonstrated applicability to biological investigations Research in mathematical biology education Reviews Commentaries Perspectives, and contributions that discuss issues important to the profession All contributions are peer-reviewed.
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